LEVER-CONTROLLABLE MAGNETIC BUCKLE
A lever-controllable magnetic buckle includes a male member having a male engaging section, a female member having a female engaging section formed with two groups of female guide-out surface, and a control lever. The male member is magnetically attracted for moving to the female member with the male engaging section retained to the female engaging section. The control lever is pivotally connected to the male member and has an actuating cam contacting with the female member. The female member will contact with surfaces of the actuating cam at different positions thereof when the control lever is pivotally swung relative to the male member, allowing the male engaging section to disengage from the female engaging section. Then, the control lever can be further swung to move the male member in different directions to selectively contact with one of the two groups of female guide-out surface and be completely separated from the female member.
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The present invention relates to a magnetic buckle having a male member and a female member magnetically engaged with each other and more particularly, to a magnetic buckle having a male member that can be selectively separated from a female member in any one of two directions.
BACKGROUND OF THE INVENTIONFollowing the advancement of industrial technologies, the structures and functions of buckles are constantly developed to show a variety of exquisite styles. A lot of objects, such as clothing, furniture and fixtures, sporting goods, safety gears and handbags, have specially designed buckles provided therewith.
Currently, there is a type of conventional magnetic buckle 1 commercially available in the market, which can be quickly fastened and released. Please refer to
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A primary object of the present invention is to provide a magnetic buckle with an improved structure, such that a male member thereof can be selectively separated from a female member in different manners. When the magnetic buckle of the present invention is mounted to an object, such as clothing or a backpack, a user can always quickly separate the male member from the female member no matter how the magnetic buckle is arranged on the object.
Another object of the present invention is to provide a magnetic buckle, of which a male member is engaged with a female member through a magnetic attraction of a male-side magnetic element to a female-side magnetic element, such that the male member is prevented from moving horizontally in an x-axis and a y-axis direction relative to the female member, and the male member having been engaged with the female member does not move horizontally to separate from the female member.
To achieve the above and other objects, the magnetic buckle according to the present invention is a lever-controllable magnetic buckle, which includes a male member, a female member and a control lever. The male member includes a male engaging section and a connecting section, and a male-side magnetic element is mounted in the male member. The female member includes a female engaging section and a guide section, and a female-side magnetic element is mounted in the female member. The female engaging section is formed at different locations with a female guide-in surface, a first female guide-out surface and a second female guide-out surface. The male-side magnetic element is magnetically attracted for moving to the female-side magnetic element, so that the male engaging section is engaged with the female engaging section after the male engaging section contacts with the female guide-in surface.
The control lever is pivotally connected to the connecting section and has an actuating cam for contacting with the guide section; the control lever is capable of swinging relatively with the male member so the surface of the actuating cam at different locations are pushed by the guide section, and the male engaging section is movable relative to the female member to separate from the female engaging section.
The male engaging section is separated from the female engaging section, the male member is capable of moving relatively with the female member along different directions; the male member will be separated from the female member after the male engaging section is selectively contacted with one of the first female guide-out surface and the second female guide-out surface.
In an embodiment, the connecting section includes a male limiting protrusion, and the control lever is selectively swingable to contact with or separate from the male limiting protrusion; and the control lever is stopped by the male limiting protrusion when the control lever in contact with the male limiting protrusion, so the swing angle of the control lever is limited by the male limiting protrusion.
The connecting section includes two connecting blocks spaced from each other, and both the actuating cam and the guide section are located between the two connecting blocks, such that the two connecting blocks and the actuating cam are located around the guide section so as the guide section is located among the control lever and the two connecting blocks for limiting the male member from moving horizontally relative to the female member.
The female member includes an auxiliary guide section spaced from the guide section, such that a surrounded space is formed between the guide section and the auxiliary guide section at one side of the female-side magnetic element; and the surrounded space is used to receive part of the male member. In this embodiment, the guide section has a cambered surface formed facing toward the surrounded space, and the actuating cam has a reset surface and a push surface located adjacent to the reset surface. The reset surface remains in contact with the cambered surface when the male-side magnetic element is magnetically attracted for moving to the female-side magnetic element, such that the male engaging section remains engaged with the female engaging section. And, when the push surface is in contact with the cambered surface, the male member is allowed to move relative to the female member.
The guide section further has a slant guide surface formed on one side adjacent to the cambered surface, such that the guide surface is located between the cambered surface and female guide-in surface and the guide surface is contactable with the male member to guide part of the male member into the surrounded space. A locating protrusion is upwardly formed at the top of the auxiliary guide section and a locating space is formed at the bottom of the control lever; the locating protrusion being extended into the locating space, such that the control lever is limited from moving horizontally by cooperation of the locating protrusion and the locating space. The auxiliary guide section further includes an auxiliary guide surface facing toward the surrounded space, such that the auxiliary guide surface is located between the locating protrusion and the first female guide-out surface; and the auxiliary guide surface is contactable with the male member to guide part of the male member into the surrounded space.
The female member further includes a first limiting section and a second limiting section. The guide section, the female engaging section and the auxiliary guide section are sequentially arranged in an x-axis direction; and the first limiting section, the female engaging section and the second limiting section are sequentially arranged in a y-axis direction.
In this embodiment, the female engaging section has engaging spaces downward recessed in a z-axis direction and retaining spaces sidewardly recessed in an x-axis direction. The engaging spaces respectively have an open end and an closed end located opposite to the open end, and the female guide-in surface are located adjacent to the open ends while the first female guide-out surface are formed from the open ends to the closed ends. Wherein the female guide-in surface and the first female guide-out surface are located at two opposite side of the engaging spaces in the x-axis direction, and the second female guide-out surface are vertically located below the female guide-in surface.
The male engaging section includes extended portions downward extended in a z-axis direction and retaining protrusions sideward extended from the extended portions in an x-axis direction. The extended portions have first male guide-out surfaces contactable with the first female guide-out surface, and the retaining protrusions have second male guide-out surfaces contactable with the second female guide-out surface and male guide-in surfaces contactable with the female guide-in surface. The second male guide-out surfaces and the male guide-in surfaces are located at two opposite sides of the retaining protrusions in a z-axis direction, and the first male guide-out surfaces are located at a lateral side of the male guide-in surfaces. And, the lever is moved toward the male member by a reset force that is generated form the male-side magnetic element, so that the lever remains in contact with the male member without suffering an external force.
The present invention is characterized in that the female engaging section of the female member is provided with the female guide-in surface, the first female guide-out surface and the second female guide-out surface; the first and the second female guide-out surface are used to separate the male engaging section from the female engaging section. Therefore, when the control lever is pivotally swung to separate the male engaging section from the female engaging section, the control lever under an externally applied pull force can selectively bring the male member to move in different directions, such that the male engaging section can selectively contact with the first female guide-out surface or the second female guide-out surface for the male member to separate from the female member. So that a user can select to separate the male member from the female member in different manners according to actual need.
Further, the connecting section of the male member includes two spaced connecting blocks and both the actuating cam of the control lever and the guide section of the female member are located between the two connecting blocks, such that the two connecting blocks and the actuating cam are located around the guide section. Therefore, when the male member is engaged with the female member due to the magnetic attraction of the male-side magnetic element to the female-side magnetic element, the guide section of the female member is located among the actuating cam of the control lever and the two connecting blocks for limiting the male member from moving horizontally relative to the female member. With this arrangement, the male member engaged with the female member is prevented from separating from the female member in a horizontal direction.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The present invention will now be described with some preferred embodiments thereof and by referring to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
To facilitate clear description of the lever-controllable magnetic buckle 2 according to the present invention, X, Y and Z axes are shown in the accompanying drawings where it is necessary. When viewing in front of the drawings, the X axis, the Y axis and the Z axis respectively indicate a longitudinal, a transverse and a vertical direction of the magnetic buckle. In the specification, directional terms, such as front, rear, right, left, upper and lower, are described based on the directions in which the X, Y and Z axes point, i.e. the x-axis, the y-axis and the z-axis direction.
The lever-controllable magnetic buckle 2 according to the present invention is for use with an object 70, which includes a deformable belt 71. In
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The auxiliary guide section 34 of the female member 30 is configured as an auxiliary guide wall 341, which is located opposite to and spaced from the guide post 321. A top of the auxiliary guide wall 341 is formed into a horizontally extended female limiting surface 342. A portion of the auxiliary guide wall 341 is upward protruded from the female limiting surface 342 to form a locating protrusion 343. The auxiliary guide wall 341 of the female member 30 includes a slant auxiliary guide surface 344 located on one side thereof that faces the guide post 321 of the guide section 32, and the auxiliary guide surface 344 is located adjacent to the first female guide-out surface 334 formed in the right engaging space 331 of the female engaging section 33, such that the auxiliary guide surface 344 is located between the locating protrusion 343 and the first female guide-out surface 334. The first limiting section 35 of the female member 30 is located opposite to the releasing opening 336 and has a first limiting wall 351 risen from the female buckling body 31 in the z-axis direction. One side of the first limiting wall 351 located closer to the female engaging section 33 is a slant first limiting surface 352. The second limiting section 36 of the female member 30 is located adjacent to the releasing opening 336 and has a second limiting wall 361 risen from the female buckling body 31 in the z-axis direction. One side of the second limiting wall 361 located closer to the female engaging section 33 is a second limiting surface 362 facing toward the first limiting surface 352. As the first limiting surface 352, the second limiting surface 362 is a slant surface.
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In the first preferred embodiment, the swing angle for the control lever 60 to swing to the actuating position S2 is larger than a slant angle of the second female guide-out surfaces 335. And, in the course the control lever 60 is swung from the initial position S1 to the actuating position S2, different surfaces of the actuating cam 61 of the control lever 60 are caused to push against the guide post 321 of the guide section 32, such that the male member 20 is moved rightward relative to the female member 30 along the third assembling path R3 (see
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The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.
Claims
1. A lever-controllable magnetic buckle, comprising:
- a male member including a male engaging section and a connecting section, and a male-side magnetic element is mounted in the male member;
- a female member including a female engaging section and a guide section, and a female-side magnetic element is mounted in the female member; the female engaging section being formed at different locations with a female guide-in surface, a first female guide-out surface and a second female guide-out surface; and the male-side magnetic element is magnetically attracted for moving to the female-side magnetic element;
- so that the male engaging section is engaged with the female engaging section after the male engaging section contacts with the female guide-in surface;
- a control lever being pivotally connected to the connecting section and having an actuating cam for contacting with the guide section; the control lever is capable of swinging relatively with the male member so the surfaces of the actuating cam at different locations are pushed by the guide section, and the male engaging section is movable relative to the female member to separate from the female engaging section;
- and when the male engaging section is separated from the female engaging section, the male member is capable of moving relatively with the female member along different directions; the male member will be separated form the female member after the male engaging section is selectively contacted with one of the first female guide-out surface and the second female guide-out surface.
2. The lever-controllable magnetic buckle as claimed in claim 1, wherein the connecting section includes a male limiting protrusion, and the control lever is selectively swingable to contact with or separate from the male limiting protrusion; and the control lever is stopped by the male limiting protrusion when the control lever in contact with the male limiting protrusion, so the swing angle of the control lever is limited by the male limiting protrusion.
3. The lever-controllable magnetic buckle as claimed in claim 2, wherein the swing angle of the control lever is larger than a slant angle of the second female guide-out surface.
4. The lever-controllable magnetic buckle as claimed in claim 1, wherein the connecting section includes two connecting blocks spaced from each other, and both the actuating cam and the guide section being located between the two connecting blocks, such that the two connecting blocks and the actuating cam are located around the guide section so as the guide section is located among the control lever and the two connecting blocks for limiting the male member from moving horizontally relative to the female member.
5. The lever-controllable magnetic buckle as claimed in claim 1, wherein the female member includes an auxiliary guide section spaced from the guide section, such that a surrounded space is formed between the guide section and the auxiliary guide section at one side of the female-side magnetic element; and the surrounded space being used to receive part of the male member.
6. The lever-controllable magnetic buckle as claimed in claim 5, wherein the guide section has a cambered surface formed facing toward the surrounded space, and the actuating cam has a reset surface and a push surface located adjacent to the reset surface; the reset surface remaining in contact with the cambered surface when the male-side magnetic element is magnetically attracted for moving to the female-side magnetic element, such that the male engaging section remains engaging with the female engaging section; and the push surface in contact with the cambered surface allowing the male member to move relative to the female member.
7. The lever-controllable magnetic buckle as claimed in claim 6, wherein the guide section further has a slant guide surface formed on one side adjacent to the cambered surface, such that the guide surface is located between the cambered surface and female guide-in surface; and the guide surface being contactable with the male member to guide part of the male member into the surrounded space.
8. The lever-controllable magnetic buckle as claimed in claim 5, wherein a locating protrusion is upwardly formed at the top of the auxiliary guide section and a locating space is formed at the bottom of the control lever; the locating protrusion being extended into the locating space, such that the control lever is limited from moving horizontally by cooperation of the locating protrusion and the locating space.
9. The lever-controllable magnetic buckle as claimed in claim 8, wherein the auxiliary guide section further includes an auxiliary guide surface facing toward the surrounded space, such that the auxiliary guide surface is located between the locating protrusion and the first female guide-out surface; and the auxiliary guide surface being contactable with the male member to guide part of the male member into the surrounded space.
10. The lever-controllable magnetic buckle as claimed in claim 5, wherein the female member further includes a first limiting section and a second limiting section; the guide section, the female engaging section and the auxiliary guide section being sequentially arranged in an x-axis direction; and the first limiting section, the female engaging section and the second limiting section being sequentially arranged in a y-axis direction.
11. The lever-controllable magnetic buckle as claimed in claim 1, wherein the female engaging section has engaging spaces downward recessed in a z-axis direction and a retaining space sidewardly recessed in an x-axis direction; the engaging spaces respectively having an open end and an closed end located opposite to the open end, and the female guide-in surface being located adjacent to the open ends while the first female guide-out surface being formed from the open ends to the closed ends.
12. The lever-controllable magnetic buckle as claimed in claim 11, wherein the female guide-in surface and the first female guide-out surface are located at two opposite side of the engaging spaces in the x-axis direction, and the second female guide-out surface are vertically located below the female guide-in surface.
13. The lever-controllable magnetic buckle as claimed in claim 1, wherein the male engaging section includes an extended portion downward extended in a z-axis direction and a retaining protrusion sideward extended from the extended portion in an x-axis direction; the extended portion having a first male guide-out surface contactable with the first female guide-out surface, and the retaining protrusion having a second male guide-out surface contactable with the second female guide-out surface, and a male guide-in surface contactable with the female guide-in surface; the second male guide-out surface and the male guide-in surface being located at two opposite sides of the retaining protrusions in a z-axis direction, and the first male guide-out surface being located at a lateral side of the male guide-in surface.
14. The lever-controllable magnetic buckle as claimed in claim 1, wherein the male-side magnetic element mounted to the male member generates a reset force that brings the control lever to move toward the male member, such that the control lever remains in contact with the male member under the reset force.
Type: Application
Filed: Jan 10, 2022
Publication Date: Oct 13, 2022
Applicant: BUTTON INTERNATIONAL CO., LTD. (Taipei)
Inventor: Chung-Lung CHEN (Taipei)
Application Number: 17/571,868